小泡
分散性
生物物理学
DNA
化学
化学物理
化学工程
材料科学
纳米技术
生物
高分子化学
生物化学
工程类
膜
作者
Ryotaro Yoneyama,Noriyuki Morikawa,Ryota Ushiyama,Tomoya Maruyama,Reiko Sato,Mamiko Tsugane,Masahiro Takinoue,Hiroaki Suzuki
出处
期刊:JACS Au
[American Chemical Society]
日期:2025-06-16
卷期号:5 (7): 3533-3544
被引量:1
标识
DOI:10.1021/jacsau.5c00568
摘要
Several studies have attempted to replicate the complex hierarchy of eukaryotic cells for the bottom-up construction of artificial cells. Specifically, reconstruction of liquid-liquid phase separation systems as membrane-less organelles is one of the key focuses of this research field, with DNA condensates acting as versatile building blocks whose associative interactions can be precisely controlled via sequence design. However, such control is only possible at the nanoscale as control over the size and morphology of the lipid vesicles and liquid-liquid phase separation systems at the meso-to-microscale is determined by the kinetic aspects of their formation processes. Microfluidics is well-suited for controlling dynamic molecular assemblies at the cellular scale. In this study, we report the controlled condensation of DNA nanostars in mass-produced monodisperse giant vesicles (GVs) generated using a microfluidic device by manipulating the concentrations of DNA and salt associated with the GV volume changes. Our approach facilitates the precise control of the dynamics of DNA condensate formation, final size of condensates, formation of multiple condensates, and reversible formation/dissociation of condensates in GVs serving as a chassis for an artificial cell. Furthermore, our approach eliminates the need for thermal annealing prior to DNA condensation, supporting the coexistence of enzyme-containing biochemical reaction systems, such as gene expression systems.
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